Detection device and method for identifying diameter and depth of glass micropore based on microscope

Through the combined design of the buffer stability mechanism, driving mechanism and cleaning mechanism, the problem of glass vibration damage in the glass micropore detection device is solved, the stability and cleanliness of the glass are achieved, and the accuracy and efficiency of detection are improved.

CN120252550AInactive Publication Date: 2025-07-04SHENZHEN ZHONGYANCHUANG TECH CO LTD
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Patent Information

Application Number
CN202510669608.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-23
Publication Date
2025-07-04
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the detection device based on a microscope to identify the diameter and depth of glass micropores in the prior art, the glass is easily damaged due to excessive vibration after being placed on the platform, resulting in economic losses.

Method used

The combination design of the buffer stability mechanism, the driving mechanism and the cleaning mechanism is adopted, including the buffer stability mechanism to keep the glass stable through the suction cup and the return spring, the driving mechanism drives the cleaning mechanism to move through the air pump and the limiting ring, the cleaning mechanism cleans up dust through the cleaning brush and the jet pipe, and the detection mechanism performs micropore detection through the microscope.

Benefits of technology

Effectively reduce vibration damage of glass during the detection process, ensure glass stability and cleanliness, thereby improving the accuracy of micropore detection, avoiding economic losses and improving detection efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of glass detection, and discloses a detection device and method for recognizing the diameter and depth of a glass micropore based on a microscope, and the device comprises a mounting cabinet, the top of the mounting cabinet is fixedly connected with a mounting platform, and the interior of the mounting platform is provided with a buffer stabilization mechanism. The buffering and stabilizing mechanism is used for keeping the stability of the glass after the glass is placed and buffering the glass after the glass is placed, a driving mechanism is arranged outside the mounting cabinet, outer baffles are fixedly connected to the two ends of the exterior of the mounting platform, a cleaning mechanism is arranged between the two outer baffles, and the driving mechanism can drive the cleaning mechanism to move. The cleaning mechanism is used for cleaning glass. And through the buffering and stabilizing mechanism, the gravity of the glass after being placed can be buffered after the glass is placed, the situation that the glass is damaged due to large vibration is avoided, then the glass to be detected can be protected, and economic losses are avoided.
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Description

Technical Field

[0001] The present invention relates to the technical field of glass detection, and specifically to a detection device and method for identifying the diameter and depth of glass micropores based on a microscope. Background Art

[0002] Glass micropores are tiny holes in the micron to nanometer range on glass materials. They have a high specific surface area, the pore diameter can be precisely regulated, and they can retain the excellent properties of glass. There are various preparation methods, including mechanical, thermal, and chemical drilling techniques. They are widely used in fields such as microelectronics, biomedicine, and the chemical industry, such as for chip packaging, biosensors, and gas separation membranes, and play an important role in promoting the technological development of various fields. Since glass micropores are small, it is difficult to detect them manually. Therefore, a detection device for identifying the diameter and depth of glass micropores based on a microscope is required. This device can quickly locate all the micropores on the glass, measure all or sample-measure specified micropores using a microscope, generate a unified report for traceability or recording, and automatically analyze whether the processing of these glass micropores meets the standards.

[0003] In the existing detection devices for identifying the diameter and depth of glass micropores based on a microscope, the platform for placing the glass is generally made of a hard material. If the glass is not carefully placed on the platform, it may cause excessive vibration and result in glass damage, thereby causing economic losses. Summary of the Invention

[0004] Aiming at the deficiencies of the existing technology, the present invention provides a detection device and method for identifying the diameter and depth of glass micropores based on a microscope, which solves the problem that in the existing detection devices for identifying the diameter and depth of glass micropores based on a microscope, the glass is easily damaged due to excessive vibration after being placed on the platform of the detection device, thereby causing economic losses.

[0005] To achieve the above objectives, the present invention is realized through the following technical solutions: A detection device for identifying the diameter and depth of glass micropores based on a microscope includes an installation cabinet. The top of the installation cabinet is fixedly connected with an installation platform. The inside of the installation platform is provided with a buffer and stabilization mechanism, which is used to maintain the stability of the glass after it is placed and buffer it after the glass is placed. The outside of the installation cabinet is provided with a driving mechanism. Both ends of the outside of the installation platform are fixedly connected with outer baffles. A cleaning mechanism is arranged between the two outer baffles. The driving mechanism can drive the cleaning mechanism to move, and the cleaning mechanism is used to clean the glass. The outside of the installation cabinet is provided with a detection mechanism, which is used for the micropore detection of the glass.

[0006] Preferably, the buffer stabilizing mechanism includes a plurality of mounting grooves, all of the plurality of mounting grooves are opened inside the mounting platform, a liquid filling groove is opened outside the mounting grooves inside the mounting platform, two liquid through holes are opened between the bottom of the mounting groove and the bottom of the liquid filling groove inside the mounting platform, a return spring is arranged inside the mounting groove, a limiting disk is slidably connected inside the mounting groove, a connecting rod is fixedly connected to the top of the limiting disk, a suction cup is fixedly connected to the top of the connecting rod, a connecting hose is fixedly connected to the outer side of the bottom of the suction cup, and the bottom of the connecting hose is fixedly connected to the top end of the mounting platform.

[0007] Preferably, the driving mechanism includes a fixed cylinder, the outside of the fixed cylinder is fixedly connected to the outside of the mounting cabinet, a limiting ring is slidably connected inside the fixed cylinder, one end of the limiting ring is fixedly connected to a movable rod, a tension spring is arranged inside the movable rod, an air groove is opened inside the movable rod, an exhaust valve is fixedly connected to the outside of the fixed cylinder away from the movable rod, a connecting curved pipe is fixedly connected to the end of the movable rod away from the exhaust valve, an air pump is fixedly connected inside the mounting cabinet, an output end of the air pump is fixedly connected to a connecting air pipe, and one end of the connecting air pipe away from the air pump is fixedly connected to the bottom end of the outside of the fixed cylinder.

[0008] Preferably, the cleaning mechanism includes two mounting frames, one sides of the two mounting frames are respectively fixedly connected to the two outer sides of the outer baffle, a connecting column is slidably connected inside the mounting frame, two limiting sliders are fixedly connected to the bottom end of the outside of the connecting column, the four limiting sliders are respectively slidably connected inside the two mounting frames, a mounting box is fixedly connected between the tops of the two connecting columns, a limiting plate is slidably connected inside the mounting box, a connecting plate is fixedly connected to the bottom of the limiting plate, a plurality of pressing springs are arranged inside the connecting plate, a cleaning brush is fixedly connected to the bottom of the connecting plate, a jet pipe is fixedly connected to the outside of the mounting box, one end of the jet pipe is fixedly connected to a communicating pipe, the bottom end of the communicating pipe is fixedly connected to the outside of the connecting curved pipe, and the end of the connecting curved pipe away from the movable rod is fixedly connected to the bottom of one of the connecting columns.

[0009] Preferably, the detection mechanism includes a motor, the outside of the motor is fixedly connected to the outside of the mounting cabinet, an output end of the motor is fixedly connected to a rotating rod, a mounting plate is fixedly connected to the top end of the outside of the rotating rod, an electric slide rail is fixedly connected to one side of the mounting plate, a sliding plate is slidably connected to the outside of the electric slide rail, a micro-hole measuring microscope is fixedly connected to the side of the sliding plate away from the mounting plate, and the bottom of the micro-hole measuring microscope is rotatably connected to the outside of the mounting cabinet.

[0010] Preferably, one end of the return spring is fixedly connected to the bottom of the limit disk, and the other end of the return spring is fixedly connected to the inner bottom end of the installation groove.

[0011] Preferably, the bottom of the connecting hose is communicated with the inside of the installation groove, and the connecting rod penetrates through the top of the installation platform.

[0012] Preferably, one end of the tension spring is fixedly connected to the inside of the fixed cylinder, and the other end of the tension spring is fixedly connected to the inside of the movable rod.

[0013] Preferably, one end of the pressing spring is fixedly connected to the inner top end of the installation box, the other end of the pressing spring is fixedly connected to the inside of the connecting plate, and the pressing spring penetrates through the inside of the limiting plate.

[0014] A detection method for identifying the diameter and depth of glass micro-holes based on a microscope includes the following method steps:

[0015] Step 1: Place the glass to be detected on the top of the installation platform, i.e., the top of the buffer and stabilization mechanism, and use the buffer and stabilization mechanism to stabilize the glass.

[0016] Step 2: Use the driving mechanism to drive the cleaning mechanism to move back and forth, so as to clean the dust on the glass:

[0017] Step 3: Operate the detection mechanism, and use the rotation and displacement of the detection mechanism to perform micro-hole detection on the entire glass.

[0018] The present invention provides a detection device and method for identifying the diameter and depth of glass micro-holes based on a microscope.

[0019] It has the following beneficial effects:

[0020] 1. Through the buffer and stabilization mechanism, the present invention can buffer the gravity of the glass after it is placed, avoid large vibrations that may cause glass damage, thereby protecting the glass to be detected and avoiding economic losses. At the same time, it can firmly suck the glass after the glass is placed on the buffer and stabilization mechanism, prevent the glass from shaking under the influence of the outside world during detection, and thus ensure the accuracy of micro-hole detection.

[0021] 2. Through the cooperation of the driving mechanism and the cleaning mechanism, the present invention can automatically clean the surface to be detected of the glass before glass detection, avoid dust falling on the glass, and thus avoid the influence of dust on the detection of glass micro-holes, improving the detection accuracy of glass micro-holes. Description of the Drawings

[0022] Figure 1 is a three-dimensional view of the present invention Figure 1 ;

[0023] Figure 2 For the three-dimensional of the present invention Figure 2 ;

[0024] Figure 3 It is a schematic structural diagram of the liquid storage tank in the present invention;

[0025] Figure 4 It is a schematic structural diagram of the connecting hose in the present invention;

[0026] Figure 5 It is a schematic structural diagram of the connecting air pipe in the present invention;

[0027] Figure 6 It is a schematic internal structural diagram of the fixing cylinder in the present invention;

[0028] Figure 7 It is a schematic structural diagram of the air injection pipe in the present invention;

[0029] Figure 8 It is a schematic structural diagram of the connecting plate in the present invention.

[0030] Among them, 1. Installation cabinet; 2. Installation platform; 3. Buffer and stabilization mechanism; 301. Installation groove; 302. Liquid storage tank; 303. Liquid passing hole; 304. Return spring; 305. Limit disc; 306. Connecting rod; 307. Suction cup; 308. Connecting hose; 4. Driving mechanism; 401. Fixing cylinder; 402. Limit ring; 403. Moving rod; 404. Pulling spring; 405. Air groove; 406. Exhaust valve; 407. Connecting curved pipe; 408. Air pump; 409. Connecting air pipe; 5. Cleaning mechanism; 501. Installation frame; 502. Connecting column; 503. Limit slider; 504. Installation box; 505. Limit plate; 506. Connecting plate; 507. Tightening spring; 508. Cleaning brush; 509. Connecting pipe; 510. Air injection pipe; 6. Detection mechanism; 601. Motor; 602. Rotating rod; 603. Installation plate; 604. Electric slide rail; 605. Sliding plate; 606. Micropore measuring microscope; 7. Outer baffle. Specific embodiments

[0031] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0032] Please refer to the attached Figure 1 - attached Figure 8, an embodiment of the present invention provides a detection device for identifying the diameter and depth of glass micropores based on a microscope, including an installation cabinet 1. A mounting platform 2 is fixedly connected to the top of the installation cabinet 1. The mounting platform 2 can provide a mounting position. A buffer and stabilization mechanism 3 is arranged inside the mounting platform 2. The buffer and stabilization mechanism 3 is used to maintain the stability of the glass after the glass is placed and perform buffering after the glass is placed. A driving mechanism 4 is arranged outside the installation cabinet 1. Outer stops 7 are fixedly connected to both outer ends of the mounting platform 2. A cleaning mechanism 5 is arranged between the two outer stops 7. The driving mechanism 4 can drive the cleaning mechanism 5 to move. The cleaning mechanism 5 is used to clean the glass. A detection mechanism 6 is arranged outside the installation cabinet 1. The detection mechanism 6 is used for the micropore detection of the glass.

[0033] The buffer stabilizing mechanism 3 includes a plurality of mounting grooves 301 which can provide a mounting space. The plurality of mounting grooves 301 are all opened inside the mounting platform 2. A liquid storage groove 302 is opened outside the mounting grooves 301 inside the mounting platform 2. The inside of the liquid storage groove 302 can temporarily store liquid. Two liquid through holes 303 are opened between the bottom of the mounting groove 301 and the bottom of the liquid storage groove 302 inside the mounting platform 2. A return spring 304 is arranged inside the mounting groove 301. A limit disk 305 is slidably connected inside the mounting groove 301. The limit disk 305 has a limiting function. The opening of the liquid through hole 303 is small, which can reduce the flow rate of the liquid, thereby reducing the descending speed of the limit disk 305. A connecting rod 306 is fixedly connected to the top of the limit disk 305. The connecting rod 306 has a connecting function. A suction cup 307 is fixedly connected to the top of the connecting rod 306. The suction cup 307 can suck the glass to prevent the glass from moving. A connecting hose 308 is fixedly connected to the outer side of the bottom of the suction cup 307. The connecting hose 308 has a connecting and venting function. The bottom of the connecting hose 308 is fixedly connected to the top end of the mounting platform 2. One end of the return spring 304 is fixedly connected to the bottom of the limit disk 305, and the other end of the return spring 304 is fixedly connected to the inner bottom end of the mounting groove 301. The bottom of the connecting hose 308 is communicated with the inside of the mounting groove 301. The connecting rod 306 penetrates through the top of the mounting platform 2. When the glass is placed on the buffer stabilizing mechanism 3, when the weight of the glass presses on the suction cup 307, it can drive the connecting rod 306 and the limit disk 305 to move downward, and then can compress the return spring 304. At this time, the liquid inside the mounting groove 301 enters the inside of the liquid storage groove 302 through the liquid through hole 303. Since the area of the liquid through hole 303 is small, the speed of the liquid in the mounting groove 301 entering the liquid storage groove 302 becomes smaller, and then the limit disk 305 can descend slowly, and then the vibration impact force when the glass is placed on the plurality of suction cups 307 can be reduced, preventing the problem that the glass is damaged due to vibration when directly placed on a rigid object. At the same time, when the limit disk 305 moves downward, it can pump air, and then the air in the suction cup 307 can be pumped out through the connecting hose 308, and then the glass can be tightly sucked by the plurality of suction cups 307, and then the stability of the glass can be maintained, preventing the glass from sliding and affecting the stability during glass detection.

[0034] The driving mechanism 4 includes a fixed cylinder 401 which provides an installation position. The outside of the fixed cylinder 401 is fixedly connected to the outside of the installation cabinet 1. A limiting ring 402 is slidably connected inside the fixed cylinder 401. The limiting ring 402 has a limiting function. One end of the limiting ring 402 is fixedly connected to a movable rod 403. A tension spring 404 is arranged inside the movable rod 403. The tension spring 404 can pull the movable rod 403 to reset when the air pressure inside the fixed cylinder 401 is small. An air groove 405 is opened inside the movable rod 403. The opening of the air groove 405 is small, so less gas is discharged. Therefore, the discharged gas is less than the incoming gas. Thus, the air pressure inside the fixed cylinder 401 can still push the movable rod 403 to extend. An exhaust valve 406 is fixedly connected to the outside of the fixed cylinder 401 on the side away from the movable rod 403. The exhaust valve 406 can perform automatic exhaust. One end of the movable rod 403 away from the exhaust valve 406 is fixedly connected to a connecting elbow 407. The connecting elbow 407 has a connecting function. An air pump 408 is fixedly connected inside the installation cabinet 1. The air pump 408 can generate a large amount of gas. The output end of the air pump 408 is fixedly connected to a connecting air pipe 409. The connecting air pipe 409 plays a role in connection. One end of the connecting air pipe 409 away from the air pump 408 is fixedly connected to the outside bottom end of the fixed cylinder 401. One end of the tension spring 404 is fixedly connected inside the fixed cylinder 401, and the other end of the tension spring 404 is fixedly connected inside the movable rod 403. Before the glass micropore detection, the glass is cleaned. At this time, the air pump 408 is started. After the air pump 408 is started, it can generate a large amount of gas, which then enters the inside of the fixed cylinder 401 through the connecting air pipe 409 and generates a large air pressure inside the fixed cylinder 401. And the area of the movable rod 403 is small, so the discharged gas is less, far less than the incoming gas volume. Thus, it can push the limiting ring 402 to move in the direction away from the exhaust valve 406, and then drive the movable rod 403 to move outward, thereby driving the connecting elbow 407 to move in the direction away from the exhaust valve 406, and then driving the cleaning mechanism 5 to move in the direction away from the detection mechanism 6, so as to clean the glass. When the cleaning mechanism 5 cannot move anymore, stop the air pump 408 and open the exhaust valve 406. Both the exhaust valve 406 and the air groove 405 discharge gas, so that the movable rod 403 can be driven to slide into the fixed cylinder 401 under the pulling force of the tension spring 404, and then drive the movable rod 403 to reset, and use the movable rod 403 to drive the connecting elbow 407 and the cleaning mechanism 5 to reset.

[0035] The cleaning mechanism 5 includes two mounting frames 501 which can provide positions for installation and sliding. One side of each of the two mounting frames 501 is fixedly connected to the outer sides of the outer baffle 7 respectively. A connecting column 502 is slidably connected inside the mounting frame 501, and the connecting column 502 serves for installation. Two limiting sliders 503 are fixedly connected to the outer bottom end of the connecting column 502. After the limiting sliders 503 slide inside the mounting frame 501, they can play a role in limiting to prevent the connecting column 502 from sliding downwards. The four limiting sliders 503 are respectively slidably connected inside the two mounting frames 501. An installation box 504 is fixedly connected between the tops of the two connecting columns 502, and the installation box 504 provides an installation position. A limiting plate 505 is slidably connected inside the installation box 504, and the limiting plate 505 has a limiting function. A connecting plate 506 is fixedly connected to the bottom of the limiting plate 505, and the connecting plate 506 serves for connection. A plurality of pressing springs 507 are arranged inside the connecting plate 506. A cleaning brush 508 is fixedly connected to the bottom of the connecting plate 506. The pressing springs 507 can apply a downward force to the connecting plate 506, and then can apply a downward force to the cleaning brush 508. Therefore, the bottom of the cleaning brush 508 can be closely attached to the top of the glass. An air jet pipe 510 is fixedly connected to the outside of the installation box 504. The air jet pipe 510 can eject gas to blow away the dust cleaned off the glass by the cleaning brush 508. One end of the air jet pipe 510 is fixedly connected to a communication pipe 509, and the communication pipe 509 serves for connection. The bottom end of the communication pipe 509 is fixedly connected to the outside of the connecting curved pipe 407. The end of the connecting curved pipe 407 far away from the movable rod 403 is fixedly connected to the bottom of one of the connecting columns 502. One end of the pressing spring 507 is fixedly connected to the inner top end of the installation box 504, and the other end of the pressing spring 507 is fixedly connected to the inside of the connecting plate 506. The pressing spring 507 passes through the inside of the limiting plate 505. When the connecting curved pipe 407 moves, it can drive the installation box 504 to move, thereby driving the limiting plate 505, the connecting plate 506 and the pressing spring 507 to move, and then driving the cleaning brush 508 to move. The glass is cleaned by the cleaning brush 508. At the same time, the gas discharged from the air groove 405 will enter the inside of the communication pipe 509 through the connecting curved pipe 407, and then enter the inside of the air jet pipe 510 through the communication pipe 509, so as to be able to eject gas to blow away the dust cleaned out by the cleaning brush 508, thereby keeping the glass clean and tidy. When the cleaning brush 508 cleans the glass, it can tightly press the cleaning brush 508 against the top of the glass by the elastic force of the pressing spring 507.

[0036] The detection mechanism 6 includes a motor 601, the exterior of the motor 601 is fixedly connected to the exterior of the installation cabinet 1, the output end of the motor 601 is fixedly connected to a rotating rod 602, the motor 601 can provide a rotating force for the rotating rod 602, the outer top of the rotating rod 602 is fixedly connected to a mounting plate 603, the mounting plate 603 can provide a mounting position, one side of the mounting plate 603 is fixedly connected to an electric slide rail 604, the exterior of the electric slide rail 604 is slidably connected to a sliding plate 605, the electric slide rail 604 can drive the sliding plate 605 to move back and forth, the side of the sliding plate 605 away from the mounting plate 603 is fixedly connected to a micro-hole measuring microscope 606, the bottom of the micro-hole measuring microscope 606 is rotatably connected to the exterior of the installation cabinet 1. When detecting the glass micro-holes, first start the micro-hole measuring microscope 606 to detect the outer holes of the glass, and start the motor 601. The rotation of the output end of the motor 601 can drive the rotating rod 602 to rotate, drive the mounting plate 603 to rotate through the rotating rod 602, and thus can drive the micro-hole measuring microscope 606 to rotate. Then start the electric slide rail 604. After the electric slide rail 604 is started, it can drive the sliding plate 605 to extend out of the range of the mounting plate 603, or drive the sliding plate 605 to retract into the range of the mounting plate 603, and then can drive the micro-hole measuring microscope 606 to move. Cooperating with the rotation of the mounting plate 603, it can perform micro-hole detection on the entire glass and can quickly detect micro-holes that are difficult for humans to observe.

[0037] A detection method for identifying the diameter and depth of glass micro-holes based on a microscope includes the following method steps:

[0038] Step 1: Place the glass to be detected on the top of the installation platform 2, i.e., the top of the buffer and stabilization mechanism 3, and use the buffer and stabilization mechanism 3 to stabilize the glass;

[0039] Step 2: Use the driving mechanism 4 to drive the cleaning mechanism 5 to move back and forth, so as to clean the dust on the glass:

[0040] Step 3: Operate the detection mechanism 6, and use the rotation and displacement of the detection mechanism 6 to perform micro-hole detection on the entire glass.

[0041] Working principle: When the glass is placed on the buffer and stabilization mechanism 3, when the weight of the glass presses on the suction cups 307, it can drive the connecting rod 306 and the limit disc 305 to move downward, and then compress the return spring 304. At this time, the liquid inside the installation groove 301 enters the liquid storage groove 302 through the liquid passage hole 303. Since the area of the liquid passage hole 303 is small, the speed of the liquid in the installation groove 301 entering the liquid storage groove 302 becomes smaller, and then the limit disc 305 can slowly descend. Then, the vibration impact force when the glass is placed on the multiple suction cups 307 can be reduced, preventing the problem of glass damage caused by vibration when the glass is directly placed on a rigid object. At the same time, when the limit disc 305 moves downward, it can pump air, and then the air in the suction cups 307 can be pumped out through the connecting hose 308. Then, the glass can be tightly sucked by the multiple suction cups 307, and then the stability of the glass can be maintained, preventing the glass from sliding and affecting the stability during glass detection;

[0042] Before performing the micro-hole detection of the glass, clean the glass. At this time, start the air pump 408. After the air pump 408 starts, a large amount of gas can be generated, which then enters the inside of the fixed cylinder 401 through the connecting air pipe 409 and generates a large air pressure inside the fixed cylinder 401. The area of the movable rod 403 is small, so the discharged gas is less, far less than the amount of gas entering. Thus, it can push the limit ring 402 to move away from the exhaust valve 406, and then drive the movable rod 403 to move outward, and then drive the connecting curved pipe 407 to move away from the exhaust valve 406, and then drive the cleaning mechanism 5 to move away from the detection mechanism 6 to clean the glass. When the cleaning mechanism 5 cannot move anymore, stop the air pump 408 and open the exhaust valve 406. Both the exhaust valve 406 and the air groove 405 discharge gas, so that under the pulling force of the tension spring 404, the movable rod 403 can be driven to slide into the inside of the fixed cylinder 401, and then drive the movable rod 403 to reset, and use the movable rod 403 to drive the connecting curved pipe 407 and the cleaning mechanism 5 to reset;

[0043] When the connecting curved pipe 407 moves, it can drive the installation box 504 to move, and then drive the limit plate 505, the connecting plate 506 and the abutting spring 507 to move, and then drive the cleaning brush 508 to move. Use the cleaning brush 508 to clean the glass. At the same time, the gas discharged from the air groove 405 will enter the inside of the connecting pipe 509 through the connecting curved pipe 407, and then enter the inside of the jet pipe 510 through the connecting pipe 509, so that gas can be ejected to blow away the dust cleaned by the cleaning brush 508, so as to keep the glass clean and tidy. When the cleaning brush 508 cleans the glass, it can use the elastic force of the abutting spring 507 to tightly press the cleaning brush 508 against the top of the glass;

[0044] When detecting micropores in glass, first start the micropore measuring microscope 606 to detect the outer pores of the glass, and start the motor 601. The rotation of the output end of the motor 601 can drive the rotating rod 602 to rotate, and the rotating rod 602 drives the mounting plate 603 to rotate, thereby driving the micropore measuring microscope 606 to rotate, and then start the electric slide rail 604. After the electric slide rail 604 is started, it can drive the sliding plate 605 to extend out of the range of the mounting plate 603, or drive the sliding plate 605 to retract into the range of the mounting plate 603, and then drive the micropore measuring microscope 606 to move. In conjunction with the rotation of the mounting plate 603, micropore detection can be performed on the entire glass.

[0045] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A detection device for identifying the diameter and depth of glass micro-holes based on a microscope, comprising an installation cabinet (1), characterized in that, A mounting platform (2) is fixedly connected to the top of the mounting cabinet (1). A buffer and stability mechanism (3) is arranged inside the mounting platform (2). The buffer and stability mechanism (3) is used to maintain the stability of the glass after the glass is placed and buffer the glass after the glass is placed. A driving mechanism (4) is arranged outside the mounting cabinet (1). Outer stoppers (7) are fixedly connected to both outer ends of the mounting platform (2). A cleaning mechanism (5) is arranged between the two outer stoppers (7). The driving mechanism (4) can drive the cleaning mechanism (5) to move. The cleaning mechanism (5) is used to clean the glass. A detection mechanism (6) is arranged outside the mounting cabinet (1). The detection mechanism (6) is used for micro-hole detection of the glass. The driving mechanism (4) includes a fixed cylinder (401). The outside of the fixed cylinder (401) is fixedly connected to the outside of the mounting cabinet (1). A limiting ring (402) is slidably connected inside the fixed cylinder (401). One end of the limiting ring (402) is fixedly connected to a movable rod (403). A tension spring (404) is arranged inside the movable rod (403). An air groove (405) is formed inside the movable rod (403). An exhaust valve (406) is fixedly connected to the outside of the fixed cylinder (401) on the side far from the movable rod (403). One end of the movable rod (403) far from the exhaust valve (406) is fixedly connected to a connecting elbow pipe (407). An air pump (408) is fixedly connected inside the mounting cabinet (1). The output end of the air pump (408) is fixedly connected to a connecting air pipe (409). One end of the connecting air pipe (409) far from the air pump (408) is fixedly connected to the bottom outside of the fixed cylinder (401).

2. The detection device for identifying the diameter and depth of glass micropores based on microscope according to claim 1, wherein, The buffer and stability mechanism (3) includes a plurality of mounting grooves (301). The plurality of mounting grooves (301) are all formed inside the mounting platform (2). A liquid filling groove (302) is formed inside the mounting platform (2) on the outside of the mounting grooves (301). Two liquid through holes (303) are formed inside the mounting platform (2) between the bottom of the mounting grooves (301) and the bottom of the liquid filling groove (302). A return spring (304) is arranged inside the mounting groove (301). A limiting disc (305) is slidably connected inside the mounting groove (301). A connecting rod (306) is fixedly connected to the top of the limiting disc (305). A suction cup (307) is fixedly connected to the top of the connecting rod (306). A connecting hose (308) is fixedly connected to the outside of the bottom of the suction cup (307). The bottom of the connecting hose (308) is fixedly connected to the top end of the mounting platform (2).

3. The detection device for identifying the diameter and depth of glass micropores based on microscope according to claim 3, characterized in that, The cleaning mechanism (5) includes two mounting frames (501). One side of each of the two mounting frames (501) is fixedly connected to the outer sides of the outer baffle (7). A connecting column (502) is slidably connected inside the mounting frame (501). Two limiting sliders (503) are fixedly connected to the outer bottom end of the connecting column (502). The four limiting sliders (503) are respectively slidably connected inside the two mounting frames (501). An installation box (504) is fixedly connected between the tops of the two connecting columns (502). A limiting plate (505) is slidably connected inside the installation box (504). A connecting plate (506) is fixedly connected to the bottom of the limiting plate (505). A plurality of pressing springs (507) are arranged inside the connecting plate (506). A cleaning brush (508) is fixedly connected to the bottom of the connecting plate (506). An air spraying pipe (510) is fixedly connected to the outside of the installation box (504). One end of the air spraying pipe (510) is fixedly connected to a communicating pipe (509). The bottom end of the communicating pipe (509) is fixedly connected to the outside of the connecting curved pipe (407). The end of the connecting curved pipe (407) far from the movable rod (403) is fixedly connected to the bottom of one of the connecting columns (502).

4. The detection device for identifying the diameter and depth of glass micropores based on microscope according to claim 1, wherein, The detection mechanism (6) includes a motor (601). The outside of the motor (601) is fixedly connected to the outside of the installation cabinet (1). A rotating rod (602) is fixedly connected to the output end of the motor (601). An installation plate (603) is fixedly connected to the outer top end of the rotating rod (602). An electric slide rail (604) is fixedly connected to one side of the installation plate (603). A sliding plate (605) is slidably connected to the outside of the electric slide rail (604). A micro-hole measuring microscope (606) is fixedly connected to the side of the sliding plate (605) far from the installation plate (603). The bottom of the micro-hole measuring microscope (606) is rotatably connected to the outside of the installation cabinet (1).

5. The detection device for identifying the diameter and depth of glass micropores based on microscope according to claim 2, wherein, One end of the return spring (304) is fixedly connected to the bottom of the limiting disc (305). The other end of the return spring (304) is fixedly connected to the inner bottom end of the installation groove (301).

6. The detection device for identifying the diameter and depth of glass micropores based on microscope according to claim 2, wherein The bottom of the connecting hose (308) is communicated with the inside of the installation groove (301). The connecting rod (306) penetrates through the top of the installation platform (2).

7. The detection device for identifying the diameter and depth of glass micropores based on microscope according to claim 3, wherein, One end of the tension spring (404) is fixedly connected to the inside of the fixed cylinder (401). The other end of the tension spring (404) is fixedly connected to the inside of the movable rod (403).

8. The detection device for identifying the diameter and depth of glass micropores based on microscope according to claim 4, characterized in that, One end of the pressing spring (507) is fixedly connected to the inner top end of the installation box (504). The other end of the pressing spring (507) is fixedly connected to the inside of the connecting plate (506). The pressing spring (507) penetrates through the inside of the limiting plate (505).

9. A detection method for identifying the diameter and depth of glass micro-holes based on a microscope, according to the detection device for identifying the diameter and depth of glass micro-holes based on a microscope as described in any one of claims 1-9, characterized in that, Including the following method steps: Step 1: Place the glass to be detected on the top of the installation platform (2), i.e., the top of the buffer stabilizing mechanism (3), and stabilize the glass by using the buffer stabilizing mechanism (3); Step 2: Use the driving mechanism (4) to drive the cleaning mechanism (5) to move back and forth, so as to clean the dust on the glass: Step 3: Operate the detection mechanism (6), and use the rotation and displacement of the detection mechanism (6) to perform micropore detection on the whole glass.